辣椒来源外泌体样纳米囊泡通过激活PPAR-γ信号通路调控线粒体自噬促进巨噬细胞M2极化OA
Chili pepper-derived exosome-like nanovesicles promote macrophage M2 polarization by activating PPAR-γ to regulate mitophagy
目的 探究辣椒来源外泌体样纳米囊泡(capsicum-derived exosome-like nanovesicles,CDELN)能否通过激活PPAR-γ(peroxisome proliferator-activated receptor γ)信号通路,调控线粒体自噬,从而调控巨噬细胞极化及其分子机制.方法 采用超速离心联合蔗糖密度梯度离心法分离提纯CDELN并进行纳米颗粒追踪分析技术(nanoparticle tracking analysis,NTA)以检测粒径并定量,用透射显微镜(transmission electron microscopy,TEM)观察形貌,通过 SDS-PAGE考马斯亮蓝染色及Western blotting实验,观察纳米囊泡中蛋白质组成及分子量分布;后进行PKH67外泌体标记与示踪实验、zeta电位检测及植物非靶向代谢组 Pro 检测实验;体外培养RAW 264.7细胞,随机分为5组:空白对照组(NC组)、LPS组(1 000 ng/mL)、CDELN(109 particles/mL)组、LPS+CDELN(1 000 ng/mL+109 particles/mL)组和LPS+CDELN+Oleuropein(1 000 ng/mL+109 particles/mL+10 μmol/L)组.干预24 h后,qPCR实验检测巨噬细胞M1、M2型极化及细胞自噬相关基因的表达,免疫荧光检测巨噬细胞膜电位水平,Western blotting检测巨噬细胞细胞自噬、M1、M2型极化标志蛋白及PPAR-γ通路相关蛋白表达.后加入PPAR-γ信号通路抑制剂橄榄苦苷(Oleuropein),检测细胞自噬、M1、M2型极化标志蛋白及PPAR-γ通路相关蛋白表达.结果 CDELN是大小均一、具有双层膜结构、富含蛋白质和核酸的外泌体样纳米囊泡,能被巨噬细胞摄取;CDELN的胶体分散体系稳定性优异,样品均一性佳,检测重复性良好;并对CDELN开展植物非靶向代谢组Pro检测,成功鉴定出1 477个代谢物(其中正离子模式948个、负离子模式529个).qPCR结果表明,与NC组相比,1 000 ng/mL LPS可显著诱导巨噬细胞M1型极化(INOS、TNF-α、IL-6)和细胞自噬(LC3Ⅱ/Ⅰ、BECLIN)相关基因表达上升(P<0.05),M2型极化(ARG1、CD206)相关基因表达下降(P<0.05),而加入含有109 particles/mL CDELN后,与LPS组相比,这些基因表达显著逆转(P<0.05).免疫荧光检测线粒体膜电位实验进一步显示,LPS组线粒体膜电位较NC组下降,自噬增加(P<0.05),而LPS+CDELN组线粒体膜电位较LPS组增加,自噬降低(P<0.05).Western blotting实验结果表明,LPS组中细胞自噬(LC3Ⅱ/Ⅰ、BECLIN、PINK、PARKIN)及M1型极化(INOS、TNF-α)的标志蛋白表达较NC组均显著上升(P<0.05),M2型极化(ARG1、CD206)及PPAR-γ通路(PPAR-γ、P-SMAD/SMAD)相关蛋白表达较NC组均显著下降(P<0.05),而LPS+CDELN组中细胞自噬及M1型极化的标志蛋白表达较NC组均显著下降(P<0.05),M2型极化及PPAR-γ通路相关蛋白表达较NC组均显著上升(P<0.05).而加入PPAR-γ抑制剂后,上述实验结果均被逆转.结论 CDELN通过激活PPAR-γ信号通路,调控线粒体自噬,从而调控巨噬细胞极化.
Objective To investigate whether Capsicum-derived exosome-like nanovesicles(CDELN)regulate mitochondrial autophagy and,consequently,macrophage polarization by activating the peroxisome proliferator-activated receptor γ(PPAR-γ)signaling pathway,along with exploring the underlying molecular mechanisms.Methods CDELNs were isolated and purified by ultracentrifugation combined with sucrose density gradient centrifugation.Particle size and concentration were determined by nanoparticle tracking analysis(NTA),and morphology was observed using transmission electron microscopy(TEM).Protein composition and molecular weight distribution in the nanovesicles were analyzed by SDS-PAGE with Coomassie brilliant blue staining and Western blot.Subsequently,PKH67 exosome labeling and tracing assay,zeta potential detection,and untargeted plant metabolomics profiling were performed.Mouse RAW 264.7 monocyte/macrophage leukemia cells were cultured in vitro and randomly divided into 5 groups:blank control group(NC group),LPS(1 000 ng/mL)group,CDELN(10 ⁹ particles/mL)group,LPS+CDELN(1 000 ng/mL+10 ⁹ particles/mL)group,and LPS+CDELN+Oleuropein(1 000 ng/mL+10 ⁹ particles/mL+10 μmol/L)group.After 24 h of intervention,the mRNA expression levels of M1/M2 macrophage polarization-related genes and autophagy-related genes were detected by quantitative real-time polymerase chain reaction(qPCR).Mitochondrial membrane potential was measured by immunofluorescence assay.The protein expression levels of autophagy markers,M1/M2 macrophage polarization markers,and PPAR-γ pathway-related proteins were detected by Western blot.After treatment with the PPAR-γ inhibitor oleuropein,the expression of the above proteins was detected again.Results CDELNs were exosome-like nanovesicles with uniform size,bilayer membrane structure,and rich in proteins and nucleic acids,which could be internalized by macrophages.CDELNs exhibited excellent stability,high sample homogeneity,and good detection reproducibility.Untargeted plant metabolomics profiling identified a total of 1 477 metabolites in CDELNs,including 948 metabolites in positive ion mode and 529 metabolites in negative ion mode.qPCR results showed that,compared with the NC group,1 000 ng/mL LPS significantly upregulated the mRNA expression of M1 macrophage polarization-related genes(iNOS,TNF-α,IL-6)and autophagy-related genes(LC3 Ⅱ/Ⅰ,BECLIN)(P<0.05),while downregulating the mRNA expression of M2 macrophage polarization-related genes(ARG1,CD206)(P<0.05).Treatment with 10 ⁹ particles/mL CDELNs significantly reversed these gene expression changes compared with the LPS group(P<0.05).Immunofluorescence for mitochondrial membrane potential further revealed that LPS treatment decreased mitochondrial membrane potential and enhanced autophagy compared with the NC group(P<0.05),whereas CDELN intervention increased mitochondrial membrane potential and reduced autophagy in LPS-stimulated cells(P<0.05).Western blot results demonstrated that,compared with the NC group,the LPS group showed significantly elevated protein expression of autophagy markers(LC3Ⅱ/Ⅰ,BECLIN,PINK1,PARKIN)and M1 macrophage markers(iNOS,TNF-α)(P<0.05),as well as notably decreased protein expression of M2 macrophage markers(ARG1,CD206)and PPAR-γ pathway-related proteins(PPAR-γ,p-SMAD/SMAD)(P<0.05).In the LPS+CDELN group,the expression of autophagy and M1 polarization markers was significantly downregulated,while the expression of M2 polarization and PPAR-γ pathway-related proteins was significantly upregulated,compared with the LPS group(P<0.05).All the above changes were reversed after the addition of the PPAR-γ inhibitor.Conclusion CDELN regulates mitochondrial autophagy by activating the PPAR-γ signaling pathway,thereby modulating macrophage polarization.
陈史钰;王璐;阮焕钧;陈俊羽;苏荣琴;陈燕贤;王小庆;柯晓
中国医学科学院阜外医院深圳医院心内科,广东深圳中国医学科学院阜外医院深圳医深圳心血管疾病重点实验室,广东深圳中国医学科学院阜外医院深圳医院心内科,广东深圳中国医学科学院阜外医院深圳医院心内科,广东深圳中国医学科学院阜外医院深圳医院心内科,广东深圳深圳市龙华区人民医院肿瘤科,广东深圳中国医学科学院阜外医院深圳医院心内科,广东深圳中国医学科学院阜外医院深圳医院心内科,广东深圳||中国医学科学院阜外医院深圳医深圳心血管疾病重点实验室,广东深圳
医药卫生
辣椒来源外泌体样纳米囊泡PPAR-γ信号通路线粒体自噬巨噬细胞极化
chili pepper-derived exosome-like nanovesiclesPPAR-γ signaling pathwaymitophagymacrophage polarization
《陆军军医大学学报》 2026 (12)
1725-1737,13
深圳市科技计划项目(NO.JCYJ20230807150802005,JCYJ20230807150803007)广东省自然科学基金区域联合基金-地区培育项目(2023A1515140174)广东省基础与应用基础研究基金(2026A1515010655)深圳市高水平医院建设专项经费(GSP-QNPY-A2025006) Supported by the Shenzhen Science and Technology Project(JCYJ20230807150802005,JCYJ20230807150803007),the Guangdong Natural Science Foundation Regional Joint Fund-Regional Cultivation Project(2023A1515140174),the Guangdong Basic and Applied Basic Research Foundation(2026A1515010655)and the Shenzhen Special Fund for High-level Hospitals Construction(GSP-QNPY-A2025006).
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